超级电容器
兴奋剂
固态
材料科学
理论(学习稳定性)
化学工程
光电子学
化学
电容
物理化学
计算机科学
电极
工程类
机器学习
作者
Mengying Xu,Wen Li,Leizhou Xu,Peng Wang,Chuanli Ren,Qingmao Long,Lei Xu,Xijuan Chai,Guanben Du,Lianpeng Zhang
摘要
The widespread adoption of aqueous polymer-based supercapacitors is significantly hampered by issues such as limited operating potential windows and low energy density. To address these challenges, this study introduces a straightforward and rapid approach involving the incorporation of an active metal, copper (Cu), into a conductive polymer matrix, poly(1,8-diaminonaphthalene), to fabricate an asymmetric supercapacitor configuration (CP//AC). This strategy aims to broaden the potential window of individual cells within aqueous electrolytes, thereby enhancing energy density. The synthesized polymer composite (CP) features a layered nanoflake morphology that facilitates conduction pathways, substantially boosting electron transfer and ion mobility rates. Notably, the CP electrode (CP-2) achieves a specific capacity of 935 mAh g−1 at 3 A g−1 and demonstrates cycling stability with negligible capacity loss over 10 000 cycles at 20 A g−1 in a three-electrode system, corresponding to a maximum power density of 8249 W kg−1 and energy density of 189 Wh kg−1. Upon fabrication of a flexible quasi-solid-state supercapacitor using CP-2//AC, an 80.3% capacity retention is observed after 1500 charge–discharge cycles at 15 A g−1. This research highlights the potential of polymeric materials for energy storage and demonstrates their feasibility in flexible aqueous supercapacitor technologies.
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